基于固废的粉土固化材料干缩性能试验研究
Experimental Study on Dry Shrinkage Properties of Solidified Material Based on Solid Waste
DOI: 10.12677/ms.2024.145072, PDF,  被引量   
作者: 周建和, 王 旭, 刘 宁:山东高速基础设施建设有限公司,山东 济南;张 磊*, 张林宏:山东省交通科学研究院,山东 济南
关键词: 固体废弃物干缩试验粉土干缩性能Solid Waste Dry Shrinkage Test Solidified Dry Shrinkage Property
摘要: 为了验证基于固体废物的固化材料对粉土干缩性能的提升作用,采用3种掺量(2%、4%和6%)的固化材料、6%水泥固化土和素土,进行干缩试验对比分析收缩特性。结果表明:掺加基于固体废物的固化材料能明显提高粉土的前期保水能力,失水过程主要发生在试验的前7天,同时能大幅降低粉土的干缩应变和干缩系数,且随着掺量的增加,效果越明显。基于固体废物的固化材料能提高粉土的抗裂性能,为路基路床填料提供了一种新的参考措施,也为固体废物的循环利用提供了一种新的思路。
Abstract: In order to verify the effect of solidified materials based on solid waste on the dry shrinkage performance of silt, three kinds of solidified materials (2%, 4% and 6%), 6% cement stabilized soil and plain soil were used to carry out dry shrinkage tests to compare and analyze the shrinkage characteristics. The results show that the addition of solidified materials based on solid waste can significantly improve the early water retention capacity of silt, the water loss process mainly occurs in the first 7 days of the test, and can significantly reduce the dry shrinkage strain and dry shrinkage coefficient of silt, and the effect is more obvious with the increase of the content. The solidified material based on solid waste can improve the crack resistance of silt, which provides a new reference measure for subgrade and roadbed filling, and also provides a new idea for the recycling of solid waste.
文章引用:周建和, 张磊, 王旭, 张林宏, 刘宁. 基于固废的粉土固化材料干缩性能试验研究[J]. 材料科学, 2024, 14(5): 656-662. https://doi.org/10.12677/ms.2024.145072

参考文献

[1] 嵇晓雷, 杨平, 刘红梅. 水泥土收缩性能室内试验研究[J]. 四川建筑科学研究, 2017, 43(2): 81-84.
[2] 王浩, 马族庆. 水泥稳定土基层收缩裂缝的形成与治理[J]. 河南建材, 2021(9): 91-92.
[3] 申爱琴, 马骉, 苏毅, 等. 加固的含砂低液限粉土收缩性能研究[J]. 建筑材料学报, 2000, 3(4): 335-339.
[4] 焦莎莎. 改良赤泥固化体用于道路基层材料的研究[D]: [硕士学位论文]. 洛阳: 河南科技大学, 2015.
[5] Li, L.Y. (1998) Properties of Red Mud Tailings Produced under Varying Process Conditions. Journal of Environmental Engineering, 124, 254-264. [Google Scholar] [CrossRef
[6] 刘鹏飞, 尹松, 王玉隆, 等. 赤泥的路用性能研究现状及其环境影响控制技术[J]. 轻金属, 2021(12): 14-21.
[7] 李荣海, 汪建, 周志华, 等. 铁尾矿在公路工程中的应用[J]. 矿业工程, 2007(5): 52-54.
[8] He, A.P., Hu, Z.L., Cao, D.G., et al. (2014) Extraction of Valuable Metals from Red Mud. Advanced Materials Research, 881-883, 667-670. [Google Scholar] [CrossRef
[9] 景英仁, 景英勤, 杨奇. 赤泥的基本性质及其工程特性[J]. 轻金属, 2005(6): 23-25.
[10] 朱军, 兰建凯. 赤泥的综合回收与利用[J]. 矿产保护与利用, 2008(2): 52-54.
[11] Patel, M. (1992) Extraction of Titanium Dioxide & Production of Building Bricks from Red Mud. Research and Industry, 37, 154.
[12] Kalkan, E. (2006) Utilization of Red Mud as a Stabilization Material for the Preparation of Clay Liners. Engineering Geology, 87, 220-229. [Google Scholar] [CrossRef
[13] Tsakiridis, P.E., Agatzini-Leonardou, S. and Oustadakis, P. (2004) Red Mud Addition in the Raw Meal for the Production of Portland Cement Clinker. Journal of Hazardous Materials, 116, 103-110. [Google Scholar] [CrossRef] [PubMed]
[14] 李允. 工业废渣赤泥路用技术研究[D]: [硕士学位论文]. 重庆: 重庆交通大学, 2021.
[15] Cao, Y., Li, W.D. and Liu, Y.G. (2007) Properties of Red Mud and Current Situation of Its Utilization. Bulletin of the Chinese Cerrmic Society, 26, 143-145.
[16] 齐建召, 杨家宽, 王梅. 赤泥做道路基层材料的试验研究[J]. 公路通科技, 2005, 22(6): 30-33.
[17] 王辉, 焦莎莎, 葛滢, 等. 赤泥掺加硅灰用于道路基层材料的试验研究[J]. 环境污染与防治, 2016, 38(3): 8-10 15.
[18] 孙兆云, 韦金城, 王林, 等. 烧结法赤泥-沥青粉固化剂稳定粉土的路用性能研究[J]. 工程科学与技术, 2021, 53(4): 101-109.